A time-resolved single-cell roadmap of the logic driving anterior neural crest diversification from neural border to migration stages

Author:

Kotov Aleksandr12ORCID,Seal Subham12ORCID,Alkobtawi Mansour12,Kappès Vincent12ORCID,Ruiz Sofia Medina3,Arbès Hugo12ORCID,Harland Richard M.3ORCID,Peshkin Leonid4,Monsoro-Burq Anne H.125ORCID

Affiliation:

1. Université Paris-Saclay, Département de Biologie, Faculté des Sciences d’Orsay, Signalisation Radiobiology and Cancer, CNRS UMR 3347, INSERM U1021, Orsay F-91405, France

2. Institut Curie Research Division, Paris Science et Lettres Research University, Orsay F-91405, France

3. Molecular and Cell Biology Department, Genetics, Genomics and Development Division, University of California Berkeley, CA 94720

4. Systems Biology Division, Harvard Medical School, Boston, MA 02115

5. Institut Universitaire de France, Paris F-75005, France

Abstract

Neural crest cells exemplify cellular diversification from a multipotent progenitor population. However, the full sequence of early molecular choices orchestrating the emergence of neural crest heterogeneity from the embryonic ectoderm remains elusive. Gene-regulatory-networks (GRN) govern early development and cell specification toward definitive neural crest. Here, we combine ultradense single-cell transcriptomes with machine-learning and large-scale transcriptomic and epigenomic experimental validation of selected trajectories, to provide the general principles and highlight specific features of the GRN underlying neural crest fate diversification from induction to early migration stages using Xenopus frog embryos as a model. During gastrulation, a transient neural border zone state precedes the choice between neural crest and placodes which includes multiple converging gene programs. During neurulation, transcription factor connectome, and bifurcation analyses demonstrate the early emergence of neural crest fates at the neural plate stage, alongside an unbiased multipotent-like lineage persisting until epithelial–mesenchymal transition stage. We also decipher circuits driving cranial and vagal neural crest formation and provide a broadly applicable high-throughput validation strategy for investigating single-cell transcriptomes in vertebrate GRNs in development, evolution, and disease.

Funder

EC | Horizon Europe | Excellent Science | HORIZON EUROPE Marie Sklodowska-Curie Actions

Agence Nationale de la Recherche

Institut Universitaire de France

HHS | NIH | Eunice Kennedy Shriver National Institute of Child Health and Human Development

HHS | National Institutes of Health

Publisher

Proceedings of the National Academy of Sciences

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